Witnessing Planetary Systems in the Making with the Next Generation Very Large Array

The discovery of thousands of exoplanets over the last couple of decades has shown that the birth of planets is a very efficient process in nature. Theories invoke a multitude of mechanisms to describe the assembly of planets in the disks around pre-main-sequence stars, but observational constraints have been sparse on account of insufficient sensitivity and resolution. Understanding how planets form and interact with their parental disk is crucial also to illuminate the main characteristics of a large portion of the full population of planets that is inaccessible to current and near-future observations. This White Paper describes some of the main issues for our current understanding of the formation and evolution of planets, and the critical contribution expected in this field by the Next Generation Very Large Array.

[1]  T. Henning,et al.  Gaps, Rings, and Non-Axisymmetric Structures in Protoplanetary Disks - From Simulations to ALMA Observations , 2014, 1411.2736.

[2]  Leonardo Testi,et al.  THE VLA VIEW OF THE HL TAU DISK: DISK MASS, GRAIN EVOLUTION, AND EARLY PLANET FORMATION , 2016, 1603.03731.

[3]  Dimitri Mawet,et al.  Flows of gas through a protoplanetary gap , 2013, Nature.

[4]  R. Neri,et al.  Dust properties of protoplanetary disks in the Taurus-Auriga star forming region from millimeter wavelengths , 2009, 0912.3356.

[5]  Andrea Isella,et al.  LARGE-SCALE ASYMMETRIES IN THE TRANSITIONAL DISKS OF SAO 206462 AND SR 21 , 2014 .

[6]  M. Mayor,et al.  A Jupiter-mass companion to a solar-type star , 1995, Nature.

[7]  Luca Ricci,et al.  RINGED SUBSTRUCTURE AND A GAP AT 1 au IN THE NEAREST PROTOPLANETARY DISK , 2016, 1603.09352.

[8]  O. Umurhan,et al.  Linear and non-linear evolution of the vertical shear instability in accretion discs , 2012, 1209.2753.

[9]  Hans Rickman,et al.  The multifaceted planetesimal formation process , 2014, 1402.1344.

[10]  Richard P. Nelson,et al.  Tidally Induced Gap Formation in Protostellar Disks: Gap Clearing and Suppression of Protoplanetary Growth , 1999 .

[11]  S. Wolf,et al.  Gaps, rings, and non-axisymmetric structures in protoplanetary disks - Emission from large grains , 2016, 1603.05179.

[12]  M. R. Haas,et al.  TERRESTRIAL PLANET OCCURRENCE RATES FOR THE KEPLER GK DWARF SAMPLE , 2015, 1506.04175.

[13]  Zhaohuan Zhu,et al.  On the radio detectability of circumplanetary discs , 2017, Monthly Notices of the Royal Astronomical Society.

[14]  Hui Li,et al.  Rossby Wave Instability of Keplerian Accretion Disks , 1998, astro-ph/9809321.

[15]  C. Dullemond,et al.  EVIDENCE FOR DUST CLEARING THROUGH RESOLVED SUBMILLIMETER IMAGING , 2008, 0802.0998.

[16]  D. Broguiere,et al.  THE 2014 ALMA LONG BASELINE CAMPAIGN: FIRST RESULTS FROM HIGH ANGULAR RESOLUTION OBSERVATIONS TOWARD THE HL TAU REGION , 2015 .

[17]  H. Klahr,et al.  CONVECTIVE OVERSTABILITY IN RADIALLY STRATIFIED ACCRETION DISKS UNDER THERMAL RELAXATION , 2014, 1403.6721.

[18]  J. Carpenter,et al.  The Complex Morphology of the Young Disk MWC 758: Spirals and Dust Clumps around a Large Cavity , 2017, 1712.08845.

[19]  Hui Li,et al.  Rossby Wave Instability of Thin Accretion Disks. II. Detailed Linear Theory , 1999, astro-ph/9907279.

[20]  National Radio Astronomy Observatory,et al.  Planet Formation in AB Aurigae: Imaging of the Inner Gaseous Spirals Observed inside the Dust Cavity , 2017, 1704.02699.

[21]  Hui Li,et al.  Investigating the Early Evolution of Planetary Systems with ALMA and the Next Generation Very Large Array , 2018, 1801.01223.

[22]  L. Testi,et al.  Ringed Structures of the HD 163296 Protoplanetary Disk Revealed by ALMA. , 2016, Physical review letters.

[23]  C. Carilli,et al.  Gap and rings carved by vortices in protoplanetary dust , 2017, 1706.07131.

[24]  Shengtai Li,et al.  MODELING DUST EMISSION OF HL TAU DISK BASED ON PLANET–DISK INTERACTIONS , 2016, 1601.00358.

[25]  Vincent Geers,et al.  A Major Asymmetric Dust Trap in a Transition Disk , 2013, Science.

[26]  W. Lyra CONVECTIVE OVERSTABILITY IN ACCRETION DISKS: THREE-DIMENSIONAL LINEAR ANALYSIS AND NONLINEAR SATURATION , 2014, 1405.3437.

[27]  Katherine Rosenfeld,et al.  AN AZIMUTHAL ASYMMETRY IN THE LkHα 330 DISK , 2013, 1307.5848.

[28]  S. Weidenschilling,et al.  Aerodynamics of solid bodies in the solar nebula. , 1977 .